ALTo: Adaptive-Length Tokenizer for Autoregressive Mask Generation
–Neural Information Processing Systems
While humans effortlessly draw visual objects and shapes by adaptively allocating attention based on their complexity, existing multimodal large language models (MLLMs) remain constrained by rigid token representations. Bridging this gap, we propose ALTo, an adaptive length tokenizer for autoregressive mask generation. To achieve this, a novel token length predictor is designed, along with a length regularization term and a differentiable token chunking strategy.
Neural Information Processing Systems
Jun-10-2026, 17:22:51 GMT
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